大地测量学与导航

基于DREAMNET的GPS/BDS/GLONASS多系统网络RTK定位性能分析

  • 姚宜斌 ,
  • 胡明贤 ,
  • 许超钤
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  • 1. 武汉大学测绘学院, 湖北 武汉 430079;
    2. 武汉大学地球空间环境与大地测量教育部重点实验室, 湖北 武汉 430079;
    3. 地球空间信息技术协同创新中心, 湖北 武汉 430079
姚宜斌(1976-),男,博士,教授,研究方向为测量数据处理理论与方法、GNSS空间环境学.E-mail:ybyao@whu.edu.cn

收稿日期: 2016-03-30

  修回日期: 2016-06-20

  网络出版日期: 2016-09-29

基金资助

国家自然科学基金面上项目(41574028);湖北省杰出青年科学基金(2015CFA036)

Positioning Accuracy Analysis of GPS/BDS/GLONASS Network RTK Based on DREAMNET

  • YAO Yibin ,
  • HU Mingxian ,
  • XU Chaoqian
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  • 1. School of Geodesy and Geomatics, Wuhan University, Wuhan 430079, China;
    2. Key Laboratory of Geospace Environment and Geodesy, Ministry of Education, Wuhan University, Wuhan 430079, China;
    3. Collaborative Innovation Center for Geospatial Technology, Wuhan 430079, China

Received date: 2016-03-30

  Revised date: 2016-06-20

  Online published: 2016-09-29

Supported by

The National Natural Science Foundation of China (No.41574028);The Natural Science Funds for Distinguished Young Scholar of Hubei Province, China (No.2015CFA036)

摘要

随着BDS系统完成亚太地区组网、GLONASS系统再次实现满星座部署以及GPS系统的现代化,多系统集成已逐步成为网络RTK技术的发展趋势。本文结合笔者所在课题组自主研发的网络RTK数据处理系统DREAMNET,对不同卫星系统组合模式下的定位精度进行比较分析。试验结果表明,GPS/BDS/GLONASS网络RTK和GPS/BDS网络RTK的定位精度最高,GPS、BDS单系统网络RTK次之。此外,随着高度角的增加,GPS单系统网络RTK的可用性显著降低,而GPS/BDS/GLONASS网络RTK在高度角为40°时依然可以在99.84%的时间里提供水平精度0.01m、高程精度0.025m的定位服务。最后,对15d的定位结果进行统计,包括不依赖GPS系统的BDS和BDS/GLONASS在内的6种组合方式皆可达到水平0.01m、高程0.025m的定位精度,其中GPS/BDS/GLONASS网络RTK则可以得到水平0.006m、高程0.015m的定位精度,证明DREAMNET的定位精度和稳定性完全可以满足测绘作业的需要。

本文引用格式

姚宜斌 , 胡明贤 , 许超钤 . 基于DREAMNET的GPS/BDS/GLONASS多系统网络RTK定位性能分析[J]. 测绘学报, 2016 , 45(9) : 1009 -1018 . DOI: 10.11947/j.AGCS.2016.20160133

Abstract

With BDS being continually providing service in the Asia-Pacific Region, GLONASS being fully operational with 24 satellites in orbit again and GPS modernization, multi-GNSS network RTK will become the development trend of network RTK in the future. The data of multi-GNSS will be process by data reserving, editing and managing system of network RTK (DREAMNET), which developed independently by this research group, to analyze and compare the positioning accuracy between different combinations of global navigation satellite system. According to the experiment, the positioning accuracy of GPS/BDS/GLONASS network RTK and GPS/BDS network RTK is highest, GPS and BDS only second. Besides, with the increasing of the cut-off elevation, the availability of single GPS network RTK significantly reduces. However with 40°cut-off elevations, positioning service with the accuracy of 0.005m in horizontal, 0.025m in vertical will be provided by GPS/BDS/GLONASS network RTK in 99.84% time of a day. Finally, the statistics of positioning accuracy for 15days show that the accuracy of 0.01m in horizontal, 0.025m in vertical could be reached in six situations, which including BDS and BDS/GLONASS network RTK. Besides, the accuracy of 0.006m in horizontal, 0.015m in vertical could be reached by GPS/BDS/GLONASS network RTK, proving that the positioning accuracy and stability of DREAMNET can meet the needs of surveying and mapping.

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